Methods and systems for producing, using, and administering hyperpolarized fluids
View Patent ↗Methods of and systems for making a hyperpolarized fluid are provided, which include exposing a fluid and parahydrogen to a catalyst. The hyperpolarized fluid can be introduced to a subject. The hyperpolarized fluid can be included in methods of imaging a subject. Also provided are methods that use the hyperpolarized fluids for detecting protein ligand interactions and for enhancing the NMR signals of biopolymers having chemically exchangeable protons.
1. A method of making a hyperpolarized fluid, comprising:
exposing a fluid and parahydrogen to a catalyst, where the fluid is a liquid or a gas and where the catalyst is an intermetallic nanoparticle heterogeneous catalyst and comprises cube, octahedron, or rod-shaped CeO 2 nanocrystals, wherein the fluid is selected from the group consisting of: water, methanol, ethanol, propanol, methylamine, ammonia, ethaneamide, methanamide, and a combination thereof;
making hyperpolarized fluid upon an interaction of the fluid, the parahydrogen, and the catalyst, wherein the catalyst has surface properties that restrict diffusion of hydrogen ad-atoms, and wherein the interaction does not result in hydrogenation of the fluid;
introducing the hyperpolarized fluid to a subject for the purpose of renal or coronary angiography, wherein the hyperpolarized fluid is a contrast agent; and
acquiring an image of subject using an imaging device.
2. The method of claim 1 , wherein the exposing comprises one of:
mixing the fluid with the catalyst to produce a fluid-catalyst mixture and
dissolution of parahydrogen into the fluid-catalyst mixture;
dissolving the parahydrogen with the fluid to form a fluid-parahydrogen mixture and
mixing the fluid-parahydrogen mixture with the catalyst; or
exposing the fluid in a vapor state and parahydrogen to the catalyst to form a hyperpolarized fluid in a vaporized state.
3. The method of claim 1 , wherein the catalyst is a Group VIII, IB, or 11B transition metal-based catalyst including Ce and at least one other metal.
4. The method of claim 1 , wherein the catalyst comprises Ce and at least one of Pt, Pd, Cu, Au, Ag, Rh, Ru, Ir, Ni, Sn, Co, Zn, Ti, Al, Fe, Si or O.
5. The method of claim 1 , wherein the catalyst is a bimetallic catalyst comprised of supported single atoms, pairs of atoms, clusters or intermetallic nanoparticles.
6. The method of claim 1 , wherein the catalyst is insoluble in the fluid, an emulsion, or a suspension of insoluble intermetallic nanoparticles.
7. A method of making a hyperpolarized fluid, comprising:
exposing a fluid and parahydrogen to a catalyst, where the fluid is a liquid or a gas and where the catalyst is an intermetallic nanoparticle heterogeneous catalyst and comprises cube, octahedron, or rod-shaped CeO 2 nanocrystals, wherein the fluid comprises water diluted in an aprotic solvent, wherein the aprotic solvent is selected from the group consisting of dioxane, nitromethane, acetonitrile, acetone, dichloromethane, and a combination thereof, in their per-deuterated or partially deuterated forms;
making hyperpolarized fluid upon an interaction of the fluid, the parahydrogen, and the catalyst, wherein the catalyst has surface properties that restrict diffusion of hydrogen ad-atoms, and wherein the interaction does not result in hydrogenation of the fluid;
introducing the hyperpolarized fluid to a subject for the purpose of renal or coronary angiography, wherein the hyperpolarized fluid is a contrast agent; and
acquiring an image of subject using an imaging device.
8. A method of making a hyperpolarized fluid, comprising:
exposing a fluid and parahydrogen to a catalyst, where the fluid is a liquid or a gas and where the catalyst is an intermetallic nanoparticle heterogeneous catalyst and comprises cube, octahedron, or rod-shaped CeO 2 nanocrystals, wherein the fluid is selected from the group consisting of: water, methanol, ethanol, propanol, methylamine, ammonia, ethaneamide, methanamide, and a combination thereof;
making hyperpolarized fluid upon an interaction of the fluid, the parahydrogen, and the catalyst, wherein the catalyst has surface properties that restrict diffusion of hydrogen ad-atoms, and wherein the interaction does not result in hydrogenation of the fluid; and
condensing the hyperpolarized fluid as a hyperpolarized solid.